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A non-iterative alternative to ordinal log-linear models - MaRDI portal

A non-iterative alternative to ordinal log-linear models (Q705413)

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scientific article; zbMATH DE number 2131516
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A non-iterative alternative to ordinal log-linear models
scientific article; zbMATH DE number 2131516

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    A non-iterative alternative to ordinal log-linear models (English)
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    31 January 2005
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    Summary: Log-linear modeling is a popular statistical tool for analysing a contingency table. This presentation focuses on an alternative approach to modeling ordinal categorical data. The technique, based on orthogonal polynomials, provides a much simpler method of model fitting than the conventional approach of maximum likelihood estimation, as it does not require iterative calculations nor the fitting and re-fitting to search for the best model. Another advantage is that quadratic and higher order effects can readily be included, in contrast to conventional log-linear models which incorporate linear terms only. The focus of the discussion is the application of the new parameter estimation technique to multi-way contingency tables with at least one ordered variable. This will also be done by considering singly and doubly ordered two-way contingency tables. It will be shown by example that the resulting parameter estimates are numerically similar to corresponding maximum likelihood estimates for ordinal log-linear models.
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    ordinal variables
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    orthogonal polynomials
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    scores
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